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Global maps of soil temperature 期刊论文
Global Change Biology, 2022
作者:  Jonas J. Lembrechts;  Johan van den Hoogen;  Juha Aalto;  Michael B. Ashcroft;  Pieter De Frenne;  Julia Kemppinen;  Martin Kopecký;  Miska Luoto;  Ilya M. D. Maclean;  Thomas W. Crowther;  Joseph J. Bailey;  Stef Haesen;  David H. Klinges;  Pekka Niittynen;  Brett R. Scheffers;  Koenraad Van Meerbeek;  Peter Aartsma;  Otar Abdalaze;  Mehdi Abedi;  Rien Aerts;  Negar Ahmadian;  Antje Ahrends;  Juha M. Alatalo;  Jake M. Alexander;  Camille Nina Allonsius;  Jan Altman;  Christof Ammann;  Christian Andres;  Christopher Andrews;  Jonas Ardö;  Nicola Arriga;  Alberto Arzac;  Valeria Aschero;  Rafael L. Assis;  Jakob Johann Assmann;  Maaike Y. Bader;  Khadijeh Bahalkeh;  Peter Baranč;  ok;  Isabel C. Barrio;  Agustina Barros;  Matti Barthel;  Edmund W. Basham;  Marijn Bauters;  Manuele Bazzichetto;  Luca Belelli Marchesini;  Michael C. Bell;  Juan C. Benavides;  José;  Luis Benito Alonso;  Bernd J. Berauer;  Jarle W. Bjerke;  Robert G. Bjö;  rk;  Mats P. Bjö;  rkman;  Katrin Bjö;  rnsdó;  ttir;  Benjamin Blonder;  Pascal Boeckx;  Julia Boike;  Stef Bokhorst;  ;  rbara N. S. Brum;  Josef Brů;  na;  Nina Buchmann;  Pauline Buysse;  José;  Luí;  s Camargo;  Otá;  vio C. Campoe;  Onur Candan;  Rafaella Canessa;  Nicoletta Cannone;  Michele Carbognani;  Jofre Carnicer;  Angé;  lica Casanova-Katny;  Simone Cesarz;  Bogdan Chojnicki;  Philippe Choler;  Steven L. Chown;  Edgar F. Cifuentes;  Marek Č;  iliak;  Tamara Contador;  Peter Convey;  Elisabeth J. Cooper;  Edoardo Cremonese;  Salvatore R. Curasi;  Robin Curtis;  Maurizio Cutini;  C. Johan Dahlberg;  Gergana N. Daskalova;  Miguel Angel de Pablo;  Stefano Della Chiesa;  ;  rgen Dengler;  Bart Deronde;  Patrice Descombes;  Valter Di Cecco;  Michele Di Musciano;  Jan Dick;  Romina D. Dimarco;  Jiri Dolezal;  Ellen Dorrepaal;  Jiř;  í;  Duš;  ek;  Nico Eisenhauer;  Lars Eklundh;  Todd E. Erickson;  Brigitta Erschbamer;  Werner Eugster;  Robert M. Ewers;  Dan A. Exton;  Nicolas Fanin;  Fatih Fazlioglu;  Iris Feigenwinter;  Giuseppe Fenu;  Olga Ferlian;  M. Rosa Ferná;  ndez Calzado;  Eduardo Ferná;  ndez-Pascual;  Manfred Finckh;  Rebecca Finger Higgens;  T'ai G. W. Forte;  Erika C. Freeman;  Esther R. Frei;  Eduardo Fuentes-Lillo;  Rafael A. Garcí;  a;  Marí;  a B. Garcí;  a;  Charly Gé;  ron;  Mana Gharun;  Dany Ghosn;  Khatuna Gigauri;  Anne Gobin;  Ignacio Goded;  Mathias Goeckede;  Felix Gottschall;  Keith Goulding;  Sanne Govaert;  Bente Jessen Graae;  Sarah Greenwood;  Caroline Greiser;  Achim Grelle;  Benoit Gué;  nard;  Mauro Guglielmin;  Joannè;  s Guillemot;  Peter Haase;  Sylvia Haider;  Aud H. Halbritter;  Maroof Hamid;  Albin Hammerle;  Arndt Hampe;  Siri V. Haugum;  Lucia Hederová;  Bernard Heinesch;  Carole Helfter;  Daniel Hepenstrick;  Maximiliane Herberich;  Mathias Herbst;  Luise Hermanutz;  David S. Hik;  Raú;  l Hoffré;  n;  ;  rgen Homeier;  Lukas Hö;  rtnagl;  Toke T. Hø;  ye;  Filip Hrbacek;  Kristoffer Hylander;  Hiroki Iwata;  Marcin Antoni Jackowicz-Korczynski;  Hervé;  Jactel;  ;  rvi Jä;  rveoja;  Szymon Jastrzę;  bowski;  Anke Jentsch;  Juan J. Jimé;  nez;  Ingibjö;  rg S. Jó;  nsdó;  ttir;  Tommaso Jucker;  Alistair S. Jump;  Radoslaw Juszczak;  ;  bert Kanka;  ;  t Kaš;  par;  George Kazakis;  Julia Kelly;  Anzar A. Khuroo;  Leif Klemedtsson;  Marcin Klisz;  Natascha Kljun;  Alexander Knohl;  Johannes Kobler;  Jozef Kollá;  r;  Martyna M. Kotowska;  Bence Ková;  cs;  Juergen Kreyling;  Andrea Lamprecht;  Simone I. Lang;  Christian Larson;  Keith Larson;  Kamil Laska;  Guerric le Maire;  Rachel I. Leihy;  Luc Lens;  Bengt Liljebladh;  Annalea Lohila;  Juan Lorite;  Benjamin Loubet;  Joshua Lynn;  Martin Macek;  Roy Mackenzie;  Enzo Magliulo;  Regine Maier;  Francesco Malfasi;  Františ;  ek Má;  liš;  Matě;  j Man;  Giovanni Manca;  Antonio Manco;  Tanguy Manise;  Paraskevi Manolaki;  Felipe Marciniak;  Radim Matula;  Ana Clara Mazzolari;  Sergiy Medinets;  Volodymyr Medinets;  Camille Meeussen;  Sonia Merinero;  Rita de Cá;  ssia Guimarã;  es Mesquita;  Katrin Meusburger;  Filip J. R. Meysman;  Sean T. Michaletz;  Ann Milbau;  Dmitry Moiseev;  Pavel Moiseev;  Andrea Mondoni;  Ruth Monfries;  Leonardo Montagnani;  Mikel Moriana-Armendariz;  Umberto Morra di Cella;  Martin Mö;  rsdorf;  Jonathan R. Mosedale;  Lena Muffler;  Miriam Muñ;  oz-Rojas;  Jonathan A. Myers;  Isla H. Myers-Smith;  Laszlo Nagy;  Marianna Nardino;  Ilona Naujokaitis-Lewis;  Emily Newling;  Lena Nicklas;  Georg Niedrist;  Armin Niessner;  Mats B. Nilsson;  Signe Normand;  Marcelo D. Nosetto;  Yann Nouvellon;  Martin A. Nuñ;  ez;  Romà;  Ogaya;  ;  ;  me Ogé;  e;  Joseph Okello;  Janusz Olejnik;  ;  rgen Eivind Olesen;  Ø;  ystein H. Opedal;  Simone Orsenigo;  Andrej Palaj;  Timo Pampuch;  Alexey V. Panov;  Meelis Pä;  rtel;  Ada Pastor;  Aní;  bal Pauchard;  Harald Pauli;  Marian Pavelka;  William D. Pearse;  Matthias Peichl;  Loï;  c Pellissier;  Rachel M. Penczykowski;  Josep Penuelas;  Matteo Petit Bon;  Alessandro Petraglia;  Shyam S. Phartyal;  Gareth K. Phoenix;  Casimiro Pio;  Andrea Pitacco;  Camille Pitteloud;  Roman Plichta;  Francesco Porro;  Miguel Portillo-Estrada;  ;  ;  me Poulenard;  Rafael Poyatos;  Anatoly S. Prokushkin;  Radoslaw Puchalka;  Mihai Puș;  caș;  Dajana Radujković;  Krystal Randall;  Amanda Ratier Backes;  Sabine Remmele;  Wolfram Remmers;  David Renault;  Anita C. Risch;  Christian Rixen;  Sharon A. Robinson;  Bjorn J. M. Robroek;  Adrian V. Rocha;  Christian Rossi;  Graziano Rossi;  Olivier Roupsard;  Alexey V. Rubtsov;  Patrick Saccone;  Clotilde Sagot;  Jhonatan Sallo Bravo;  Cinthya C. Santos;  Judith M. Sarneel;  Tobias Scharnweber;  Jonas Schmeddes;  Marius Schmidt;  Thomas Scholten;  Max Schuchardt;  Naomi Schwartz;  Tony Scott;  Julia Seeber;  Ana Cristina Segalin de Andrade;  Tim Seipel;  Philipp Semenchuk;  Rebecca A. Senior;  Josep M. Serra-Diaz;  Piotr Sewerniak;  Ankit Shekhar;  Nikita V. Sidenko;  Lukas Siebicke;  Laura Siegwart Collier;  Elizabeth Simpson;  David P. Siqueira;  Zuzana Sitková;  Johan Six;  Marko Smiljanic;  Stuart W. Smith;  Sarah Smith-Tripp;  Ben Somers;  Mia Vedel Sø;  rensen;  José;  Joã;  o L. L. Souza;  Bartolomeu Israel Souza;  Arildo Souza Dias;  Marko J. Spasojevic;  James D. M. Speed;  Fabien Spicher;  Angela Stanisci;  Klaus Steinbauer;  Rainer Steinbrecher;  Michael Steinwandter;  Michael Stemkovski;  ;  rg G. Stephan;  Christian Stiegler;  Stefan Stoll;  Martin Svá;  tek;  Miroslav Svoboda;  Torbern Tagesson;  Andrew J. Tanentzap;  Franziska Tanneberger;  Jean-Paul Theurillat;  Haydn J. D. Thomas;  Andrew D. Thomas;  Katja Tielbö;  rger;  Marcello Tomaselli;  Urs Albert Treier;  Mario Trouillier;  Pavel Dan Turtureanu;  Rosamond Tutton;  Vilna A. Tyystjä;  rvi;  Masahito Ueyama;  Karol Ujhá;  zy;  Mariana Ujhá;  zyová;  Domas Uogintas;  Anastasiya V. Urban;  Josef Urban;  Marek Urbaniak;  Tudor-Mihai Ursu;  Francesco Primo Vaccari;  Stijn Van de Vondel;  Liesbeth van den Brink;  Maarten Van Geel;  Vigdis Vandvik;  Pieter Vangansbeke;  Andrej Varlagin;  G. F. Veen;  Elmar Veenendaal;  Susanna E. Venn;  Hans Verbeeck;  Erik Verbrugggen;  Frank G. A. Verheijen;  Luis Villar;  Luca Vitale;  Pascal Vittoz;  Maria Vives-Ingla;  Jonathan von Oppen;  Josefine Walz;  Runxi Wang;  Yifeng Wang;  Robert G. Way;  Ronja E. M. Wedegä;  rtner;  Robert Weigel;  Jan Wild;  Matthew Wilkinson;  Martin Wilmking;  Lisa Wingate;  Manuela Winkler;  Sonja Wipf;  Georg Wohlfahrt;  Georgios Xenakis;  Yan Yang;  Zicheng Yu;  Kailiang Yu;  Florian Zellweger;  Jian Zhang;  Zhaochen Zhang;  Peng Zhao;  Klaudia Ziembliń;  ska;  Reiner Zimmermann;  Shengwei Zong;  Viacheslav I. Zyryanov;  Ivan Nijs;  Jonathan Lenoir
收藏  |  浏览/下载:38/0  |  提交时间:2022/02/23
CATMoS: Collaborative Acute Toxicity Modeling Suite 期刊论文
Environmental Health Perspectives, 2021
作者:  Kamel Mansouri;  Agnes L. Karmaus;  Jeremy Fitzpatrick;  Grace Patlewicz;  Prachi Pradeep;  Domenico Alberga;  Nathalie Alepee;  Timothy E.H. Allen;  Dave Allen;  Vinicius M. Alves;  Carolina H. Andrade;  Tyler R. Auernhammer;  Davide Ballabio;  Shannon Bell;  Emilio Benfenati;  Sudin Bhattacharya;  Joyce V. Bastos;  Stephen Boyd;  J.B. Brown;  Stephen J. Capuzzi;  Yaroslav Chushak;  Heather Ciallella;  Alex M. Clark;  Viviana Consonni;  Pankaj R. Daga;  Sean Ekins;  Sherif Farag;  Maxim Fedorov;  Denis Fourches;  Domenico Gadaleta;  Feng Gao;  Jeffery M. Gearhart;  Garett Goh;  Jonathan M. Goodman;  Francesca Grisoni;  Christopher M. Grulke;  Thomas Hartung;  Matthew Hirn;  Pavel Karpov;  Alexandru Korotcov;  Giovanna J. Lavado;  Michael Lawless;  Xinhao Li;  Thomas Luechtefeld;  Filippo Lunghini;  Giuseppe F. Mangiatordi;  Gilles Marcou;  Dan Marsh;  Todd Martin;  Andrea Mauri;  Eugene N. Muratov;  Glenn J. Myatt;  Dac-Trung Nguyen;  Orazio Nicolotti;  Reine Note;  Paritosh Pande;  Amanda K. Parks;  Tyler Peryea;  Ahsan H. Polash;  Robert Rallo;  Alessandra Roncaglioni;  Craig Rowlands;  Patricia Ruiz;  Daniel P. Russo;  Ahmed Sayed;  Risa Sayre;  Timothy Sheils;  Charles Siegel;  Arthur C. Silva;  Anton Simeonov;  Sergey Sosnin;  Noel Southall;  Judy Strickland;  Yun Tang;  Brian Teppen;  Igor V. Tetko;  Dennis Thomas;  Valery Tkachenko;  Roberto Todeschini;  Cosimo Toma;  Ignacio Tripodi;  Daniela Trisciuzzi;  Alexander Tropsha;  Alexandre Varnek;  Kristijan Vukovic;  Zhongyu Wang;  Liguo Wang;  Katrina M. Waters;  Andrew J. Wedlake;  Sanjeeva J. Wijeyesakere;  Dan Wilson;  Zijun Xiao;  Hongbin Yang;  Gergely Zahoranszky-Kohalmi;  Alexey V. Zakharov;  Fagen F. Zhang;  Zhen Zhang;  Tongan Zhao;  Hao Zhu;  Kimberley M. Zorn;  Warren Casey;  Nicole C. Kleinstreuer
收藏  |  浏览/下载:15/0  |  提交时间:2021/05/07
Optimal Climate Normals for North Atlantic Hurricane Activity 期刊论文
Geophysical Research Letters, 2021
作者:  Carl J. Schreck;  Philip J. Klotzbach;  Michael M. Bell
收藏  |  浏览/下载:8/0  |  提交时间:2021/05/07
Physical properties and gas hydrate at a near‐seafloor thrust fault, Hikurangi Margin, New Zealand 期刊论文
Geophysical Research Letters, 2020
作者:  Ann E. Cook;  Matteo Paganoni;  M. Ben Clennell;  David D. McNamara;  Michael Nole;  Xiujuan Wang;  Shuoshuo Han;  Rebecca E. Bell;  Evan A. Solomon;  Demian M. Saffer;  Philip M. Barnes;  Ingo A. Pecher;  Laura M. Wallace;  Leah J. LeVay;  Katerina E. Petronotis
收藏  |  浏览/下载:8/0  |  提交时间:2020/08/18
Polygonal eyewall asymmetries during the rapid intensification of Hurricane Michael (2018) 期刊论文
Geophysical Research Letters, 2020
作者:  Ting‐;  Yu Cha;  Michael M. Bell;  Wen‐;  Chau Lee;  Alexander J. DesRosiers
收藏  |  浏览/下载:5/0  |  提交时间:2020/07/21
A Comparison of the Polarimetric Radar Characteristics of Heavy Rainfall From Hurricanes Harvey (2017) and Florence (2018) 期刊论文
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2020, 125 (11)
作者:  DeHart, Jennifer C.;  Bell, Michael M.
收藏  |  浏览/下载:7/0  |  提交时间:2020/08/18
Transgenerational Plasticity in Human-Altered Environments 期刊论文
TRENDS IN ECOLOGY & EVOLUTION, 2020, 35 (2) : 115-124
作者:  Donelan, Sarah C.;  Hellmann, Jennifer K.;  Bell, Alison M.;  Luttbeg, Barney;  Orrock, John L.;  Sheriff, Michael J.;  Sih, Andrew
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/02
The molecular basis for sugar import in malaria parasites 期刊论文
NATURE, 2020, 578 (7794) : 321-+
作者:  Zhao, Peishen;  Liang, Yi-Lynn;  Belousoff, Matthew J.;  Deganutti, Giuseppe;  Fletcher, Madeleine M.;  Willard, Francis S.;  Bell, Michael G.;  Christe, Michael E.;  Sloop, Kyle W.;  Inoue, Asuka;  Truong, Tin T.;  Clydesdale, Lachlan;  Furness, Sebastian G. B.;  Christopoulos, Arthur;  Wang, Ming-Wei;  Miller, Laurence J.;  Reynolds, Christopher A.;  Danev, Radostin;  Sexton, Patrick M.;  Wootten, Denise
收藏  |  浏览/下载:17/0  |  提交时间:2020/07/03

Elucidating the mechanism of sugar import requires a molecular understanding of how transporters couple sugar binding and gating events. Whereas mammalian glucose transporters (GLUTs) are specialists(1), the hexose transporter from the malaria parasite Plasmodium falciparum PfHT1(2,3) has acquired the ability to transport both glucose and fructose sugars as efficiently as the dedicated glucose (GLUT3) and fructose (GLUT5) transporters. Here, to establish the molecular basis of sugar promiscuity in malaria parasites, we determined the crystal structure of PfHT1 in complex with d-glucose at a resolution of 3.6 angstrom. We found that the sugar-binding site in PfHT1 is very similar to those of the distantly related GLUT3 and GLUT5 structures(4,5). Nevertheless, engineered PfHT1 mutations made to match GLUT sugar-binding sites did not shift sugar preferences. The extracellular substrate-gating helix TM7b in PfHT1 was positioned in a fully occluded conformation, providing a unique glimpse into how sugar binding and gating are coupled. We determined that polar contacts between TM7b and TM1 (located about 15 angstrom from d-glucose) are just as critical for transport as the residues that directly coordinate d-glucose, which demonstrates a strong allosteric coupling between sugar binding and gating. We conclude that PfHT1 has achieved substrate promiscuity not by modifying its sugar-binding site, but instead by evolving substrate-gating dynamics.


Crystal structure of the Plasmodium falciparum hexose transporter PfHT1 reveals the molecular basis of its ability to transport multiple types of sugar as efficiently as the dedicated mammalian glucose and fructose transporters.


  
Processive extrusion of polypeptide loops by a Hsp100 disaggregase 期刊论文
NATURE, 2020, 578 (7794) : 317-+
作者:  Zhao, Peishen;  Liang, Yi-Lynn;  Belousoff, Matthew J.;  Deganutti, Giuseppe;  Fletcher, Madeleine M.;  Willard, Francis S.;  Bell, Michael G.;  Christe, Michael E.;  Sloop, Kyle W.;  Inoue, Asuka;  Truong, Tin T.;  Clydesdale, Lachlan;  Furness, Sebastian G. B.;  Christopoulos, Arthur;  Wang, Ming-Wei;  Miller, Laurence J.;  Reynolds, Christopher A.;  Danev, Radostin;  Sexton, Patrick M.;  Wootten, Denise
收藏  |  浏览/下载:17/0  |  提交时间:2020/07/03

The ability to reverse protein aggregation is vital to cells(1,2). Hsp100 disaggregases such as ClpB and Hsp104 are proposed to catalyse this reaction by translocating polypeptide loops through their central pore(3,4). This model of disaggregation is appealing, as it could explain how polypeptides entangled within aggregates can be extracted and subsequently refolded with the assistance of Hsp70(4,5). However, the model is also controversial, as the necessary motor activity has not been identified(6-8) and recent findings indicate non-processive mechanisms such as entropic pulling or Brownian ratcheting(9,10). How loop formation would be accomplished is also obscure. Indeed, cryo-electron microscopy studies consistently show single polypeptide strands in the Hsp100 pore(11,12). Here, by following individual ClpB-substrate complexes in real time, we unambiguously demonstrate processive translocation of looped polypeptides. We integrate optical tweezers with fluorescent-particle tracking to show that ClpB translocates both arms of the loop simultaneously and switches to single-arm translocation when encountering obstacles. ClpB is notably powerful and rapid  it exerts forces of more than 50 pN at speeds of more than 500 residues per second in bursts of up to 28 residues. Remarkably, substrates refold while exiting the pore, analogous to co-translational folding. Our findings have implications for protein-processing phenomena including ubiquitin-mediated remodelling by Cdc48 (or its mammalian orthologue p97)(13) and degradation by the 26S proteasome(14).


A combination of optical tweezers and fluorescent-particle tracking is used to dissect the dynamics of the Hsp100 disaggregase ClpB, and show that the processive extrusion of polypeptide loops is the mechanistic basis of its activity.


  
Activation of the GLP-1 receptor by a non-peptidic agonist 期刊论文
NATURE, 2020, 577 (7790) : 432-+
作者:  Zhao, Peishen;  Liang, Yi-Lynn;  Belousoff, Matthew J.;  Deganutti, Giuseppe;  Fletcher, Madeleine M.;  Willard, Francis S.;  Bell, Michael G.;  Christe, Michael E.;  Sloop, Kyle W.;  Inoue, Asuka;  Truong, Tin T.;  Clydesdale, Lachlan;  Furness, Sebastian G. B.;  Christopoulos, Arthur;  Wang, Ming-Wei;  Miller, Laurence J.;  Reynolds, Christopher A.;  Danev, Radostin;  Sexton, Patrick M.;  Wootten, Denise
收藏  |  浏览/下载:9/0  |  提交时间:2020/07/03

Class B G-protein-coupled receptors are major targets for the treatment of chronic diseases, including diabetes and obesity(1). Structures of active receptors reveal peptide agonists engage deep within the receptor core, leading to an outward movement of extracellular loop 3 and the tops of transmembrane helices 6 and 7, an inward movement of transmembrane helix 1, reorganization of extracellular loop 2 and outward movement of the intracellular side of transmembrane helix 6, resulting in G-protein interaction and activation(2-6). Here we solved the structure of a non-peptide agonist, TT-OAD2, bound to the glucagon-like peptide-1 (GLP-1) receptor. Our structure identified an unpredicted non-peptide agonist-binding pocket in which reorganization of extracellular loop 3 and transmembrane helices 6 and 7 manifests independently of direct ligand interaction within the deep transmembrane domain pocket. TT-OAD2 exhibits biased agonism, and kinetics of G-protein activation and signalling that are distinct from peptide agonists. Within the structure, TT-OAD2 protrudes beyond the receptor core to interact with the lipid or detergent, providing an explanation for the distinct activation kinetics that may contribute to the clinical efficacy of this compound series. This work alters our understanding of the events that drive the activation of class B receptors.